Author:
Kim Backki,Kim Dong-Gwan,Lee Gileung,Seo Jeonghwan,Choi Ik-Young,Choi Beom-Soon,Yang Tae-Jin,Kim Kwang Soo,Lee Joohyun,Chin Joong Hyoun,Koh Hee-Jong
Abstract
Abstract
Background
Tongil (IR667-98-1-2) rice, developed in 1972, is a high-yield rice variety derived from a three-way cross between indica and japonica varieties. Tongil contributed to the self-sufficiency of staple food production in Korea during a period known as the `Korean Green Revolution'. We analyzed the nucleotide-level genome structure of Tongil rice and compared it to those of the parental varieties.
Results
A total of 17.3 billion Illumina Hiseq reads, 47× genome coverage, were generated for Tongil rice. Three parental accessions of Tongil rice, two indica types and one japonica type, were also sequenced at approximately 30x genome coverage. A total of 2,149,991 SNPs were detected between Tongil and Nipponbare varieties. The average SNP frequency of Tongil was 5.77 per kb. Genome composition was determined based on SNP data by comparing Tongil with three parental genome sequences using the sliding window approach. Analyses revealed that 91.8% of the Tongil genome originated from the indica parents and 7.9% from the japonica parent. Copy numbers of SSR motifs, ORF gene distribution throughout the whole genome, gene ontology (GO) annotation, and some yield-related QTLs or gene locations were also comparatively analyzed between Tongil and parental varieties using sequence-based tools. Each genetic factor was transferred from the parents into Tongil rice in amounts that were in proportion to the whole genome composition.
Conclusions
Tongil was derived from a three-way cross among two indica and one japonica varieties. Defining the genome structure of Tongil rice demonstrates that the Tongil genome is derived primarily from the indica genome with a small proportion of japonica genome introgression. Comparative gene distribution, SSR, GO, and yield-related gene analysis support the finding that the Tongil genome is primarily made up of the indica genome.
Publisher
Springer Science and Business Media LLC
Subject
Plant Science,Soil Science,Agronomy and Crop Science
Reference38 articles.
1. Ashikari M, Sakakibara H, Lin S, Yamamoto T, Takashi T, Nishimura A, Angeles ER, Qian Q, Kitano H, Matsuoka M: Cytokinin oxidase regulates rice grain production. Science 2005, 309(5735):741–745. doi: 10.1126/science.1113373 doi: 10.1126/science.1113373 10.1126/science.1113373
2. Chen H, Xie W, He H, Yu H, Chen W, Li J, Yu R, Yao Y, Zhang W, He Y, Tang X, Zhou F, Deng XW, Zhang Q: A high-density SNP genotyping array for rice biology and molecular breeding. Mol Plant 2014, 7(3):541–553. doi:10.1093/mp/sst135 doi:10.1093/mp/sst135 10.1093/mp/sst135
3. Cheng SH, Zhuang JY, Fan YY, Du JH, Cao LY: Progress in research and development on hybrid rice: a super-domesticate in China. Ann Bot 2007, 100(5):959–966. doi:10.1093/aob/mcm121 doi:10.1093/aob/mcm121 10.1093/aob/mcm121
4. Chung GS, Heu MH: Status of japonica-indica hybridization in Korea. In Selected papers from the 1979 International Rice Research. International Rice Research Institute, Manila; 1980:135–152.
5. Chung GS, Heu MH: Improvememt of Tongil-Type Rice Cultivars from Indica Japonica Hybridization in Korea. In Biotechnology in Agriculture and Forestry 14. Springer-Verlag Berlin Heidelberg, Germany; 1991:105–112.
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